Volcanic rock inorganic mineral fully cast busbar support hoisting structure
By designing a bracket lifting structure for fully casting busbars of inorganic minerals in volcanic rock, including triangular brackets, busbar installation auxiliary support mechanisms and bracket spacing adjustment mechanisms, the problem of busbar installation offset caused by long-term high-strength operations is solved, and the precise installation of the casting busbar body and the safe operation of the power system are achieved.
Patent Information
- Application Number
- CN202510127797.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-05
- Publication Date
- 2025-05-13
- Estimated Expiration
- 2045-02-05
AI Technical Summary
During the installation of the volcanic rock inorganic minerals, the negligence caused by long-term high-intensity operations may lead to the bus installation offset, affecting electrical performance and stability, and even causing short circuits or system failures.
A fully cast busbar support hoisting structure of volcanic rock inorganic minerals is designed, including a triangle bracket, a busbar installation auxiliary support mechanism and a bracket spacing adjustment mechanism. Through these structures, the cast busbar body can be automatically limited and stabilized to ensure that it does not shift during the installation process.
Through the automated busbar installation auxiliary support mechanism and bracket spacing adjustment mechanism, the precise installation of the cast busbar body is ensured, the risk of electrical discharge, short circuit or system failure caused by human negligence is reduced, and the safe operation of the power system and the efficiency of power transmission is improved.
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Figure CN119560956B_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of busbar support hoisting, in particular to a volcanic rock inorganic mineral full-cast busbar support hoisting structure. Background Art
[0002] The volcanic rock inorganic mineral fully cast busbar is a connection device used for grounding power equipment. Its conductor part is usually made of high-quality conductive materials such as copper and aluminum, while the insulating part is fully cast with volcanic rock inorganic mineral composite materials. During the installation of the volcanic rock inorganic mineral fully cast busbar, a bracket hoisting structure is required to support and fix the busbar to ensure its stability and safety in the electrical system.
[0003] In the delicate and crucial process of fully cast busbar installation, the busbar must be accurately placed on the pre-set bracket position. At the same time, experienced workers are required to concentrate on maintaining its stability to ensure that the busbar does not deviate during the entire installation process, so as to perfectly achieve the expected installation effect. However, under long-term high-intensity work, workers may fail to fully perform their duties due to momentary negligence. In the process of maintaining the stability of the busbar, they may be slightly lax, or fail to ensure the absolute accuracy of the position when fixing the busbar, which will not only cause a slight deviation in the installation of the busbar, but also seriously affect the electrical performance of the busbar. The energy and overall stability of the busbar may be affected, resulting in abnormal electrical discharge during operation of the busbar, and even directly causing a short circuit or system failure, posing a serious threat to the safe operation of the power system. In addition, if the position of the busbar is not absolutely accurate during the fixing process, poor contact may occur between the busbars, increasing contact resistance and causing excessive heat to be generated during operation of the busbar. In addition, if the fixing method is inappropriate or not correctly executed, the busbar may become loose due to vibration or external force during operation, resulting in the risk of displacement or falling off during power transmission, resulting in the interruption of power transmission, posing a safety hazard to surrounding equipment and personnel.
[0004] Therefore, the present invention proposes a volcanic rock inorganic mineral full-cast busbar support hoisting structure to solve the above problems. Summary of the invention
[0005] 1. Technical issues to be resolved
[0006] In view of the deficiencies in the prior art, the present invention provides a volcanic rock inorganic mineral fully cast busbar support hoisting structure, which can effectively solve the problems in the prior art.
[0007] (II) Technical solution
[0008] To achieve the above object, the object of the present invention can be achieved by the following technical solutions:
[0009] The volcanic rock inorganic mineral fully cast busbar support hoisting structure comprises a wall and a cast busbar body, wherein the cast busbar body is arranged on one side of the wall, and mounting plates are equidistantly fixedly connected on both sides of the cast busbar body, and triangular brackets are equidistantly arranged on one side of the cast busbar body close to the mounting plate, and threaded holes are symmetrically opened on the upper end faces of the triangular brackets, and bolts are symmetrically threaded through the mounting plates, and the bolts are threadedly connected with the threaded holes, and busbar installation auxiliary support mechanisms are arranged on the triangular brackets, and the busbar installation auxiliary support mechanisms are used to assist the cast busbar body to move to a specified position, and bracket spacing adjustment mechanisms are arranged between the triangular brackets, and the bracket spacing adjustment mechanisms are used to adjust the distance between the triangular brackets.
[0010] As a further solution of the present invention: the busbar installation auxiliary support mechanism includes a limit plate, the limit plate is rotatably connected to the side of the triangular bracket away from the wall, the triangular bracket is horizontally slidably connected to a movable plate on the side away from the cast busbar body, the movable plate is fixedly connected to a frame on the side close to the limit plate, the frame is slidably connected inside with a linkage column, the linkage column is fixedly connected with a linkage plate, and the linkage plate is fixedly connected to the outer surface of the limit plate.
[0011] As a further solution of the present invention: the busbar installation auxiliary support mechanism also includes a central axis, the central axis is fixedly connected to the side of the triangular bracket close to the movable plate, the outer surface of the central axis is rotatably connected with a shift plate, the shift plate is symmetrically provided with through grooves, the through grooves are respectively slidably connected with a first cylinder and a second cylinder, and the first cylinder is fixedly connected to the side wall of the movable plate.
[0012] As a further solution of the present invention: a moving block is fixedly connected to one side of the second cylinder close to the triangular bracket, the moving block is horizontally slidably connected to the upper end surface of the triangular bracket, and a slot is provided on the upper end surface of the moving block.
[0013] As a further solution of the present invention: a support frame is fixedly connected to the upper end surface of the triangular bracket away from the mounting plate, a lifting column is slidably connected to the support frame, a limiting block is fixedly connected to the lower end of the lifting column, the limiting block and the slot are engaged with each other, the limiting block is an inclined surface on the side close to the moving block, a disc is fixedly connected to the upper end surface of the lifting column, a spring is fixedly connected between the lower end surface of the disc and the upper end surface of the support frame, and the spring is sleeved on the outer surface of the lifting column.
[0014] As a further solution of the present invention: a vertical plate is fixedly connected to the upper end surface of the support frame, and a protrusion is slidably connected through the disc.
[0015] As a further solution of the present invention: the bracket spacing adjustment mechanism includes a symmetrically arranged hollow plate, and the upper and lower ends of the hollow plate are penetrated by extension plates that are slidably connected, the triangular brackets are respectively fixedly connected to the extension plates and the side walls of the hollow plates, and the opposite sides of the two hollow plates are symmetrically fixedly connected with side plates, and the side plates and the extension plates are both provided with mounting holes, and the side plates and the extension plates are both installed on the side walls of the wall through the mounting holes.
[0016] As a further solution of the present invention: cross plates are fixedly connected between the extension plates at the same height, connecting rods are symmetrically rotatably connected on opposite sides of the two cross plates, connecting blocks are rotatably connected between the connecting rods on the same side, sliding columns are fixedly connected to the connecting blocks on the side close to the hollow plate, and the sliding columns are slidably connected to the hollow plate.
[0017] As a further solution of the present invention: the end of the sliding column away from the connecting block is fixedly connected with a push plate, the push plate is located between two side plates, the side of the side plate close to the push plate is provided with a sliding groove, and the push plate is slidably connected in the sliding groove.
[0018] As a further solution of the present invention: a bottom plate is fixedly connected between the side plates on the same side, and positioning holes are equidistantly opened at the center of the bottom plate close to one side of the push plate. A threaded rod is threadedly connected through the center of the push plate, and the threaded rod is threadedly connected to the positioning hole, and a handle is fixedly connected to the end of the threaded rod away from the positioning hole.
[0019] (III) Beneficial effects
[0020] Compared with the prior art, the present invention provides a volcanic rock inorganic mineral full cast busbar support hoisting structure, which has the following beneficial effects:
[0021] The busbar installation auxiliary support mechanism is set up to automatically limit the cast busbar body to the triangular bracket and stabilize it for the convenience of installation by the staff. It can not only ensure that the cast busbar body does not deviate during the installation process, but also avoid the negligence of the staff due to long-term high-intensity work, such as the inability to maintain the stable state of the cast busbar body, or the failure to ensure the absolute accuracy of its position when fixing the cast busbar body, so as to perfectly achieve the expected installation effect, ensure that the connection between the cast busbar bodies is tight and the contact is good, reduce the contact resistance, and the precise installation of the cast busbar body can ensure the reliability of the electrical connection, reduce the risk of electrical discharge, short circuit or system failure caused by installation deviation, avoid power outages or equipment damage caused by problems with the cast busbar body, thereby maintaining the safe operation of the power system, reducing the heat generated by the cast busbar body during operation, and improving the efficiency of power transmission;
[0022] Among them, by setting the initial position of the limit plate at the same height to an outward eight shape, a spacious entrance and intuitive visual guidance are provided for the staff, which not only enables the staff to move the cast busbar body between the triangular brackets more easily, reducing obstacles during the operation of the cast busbar body and improving the work efficiency of the installation of the cast busbar body, but also prevents the cast busbar body from colliding or rubbing with the triangular bracket during the movement process, resulting in damage to the cast busbar body, thereby extending the service life of the cast busbar body and reducing the replacement cost caused by damage.
[0023] By setting the lifting column, disc and spring, the position of the limit plate can be automatically fixed after the limit plate limits the cast busbar body between the triangular brackets, which not only reduces the risk of loosening or displacement of the cast busbar body due to vibration or external force during installation, thereby enhancing the stability and safety of the installation of the cast busbar body, but also automatically fixes the position of the limit plate, reducing the need for manual intervention. The staff can focus more on the key steps in the installation process of the cast busbar body without spending a lot of time on adjusting the position of the limit plate, thereby improving the overall efficiency of the installation of the cast busbar body.
[0024] By setting the bracket spacing adjustment mechanism, the extension plates on both sides can be driven to slide out from the inside of the hollow plate at the same time, driving the triangular brackets on both sides to move automatically, so as to accurately adjust the spacing between the triangular brackets, which not only reduces the human error in the installation process of the triangular brackets, shortens the installation time of the triangular brackets, and reduces the waste of man-hours caused by repeated measurement and adjustment. At the same time, precise spacing control also reduces the rework rate caused by improper installation, and by accurately adjusting the spacing between the triangular brackets, it can ensure that the cast busbar body is evenly supported when subjected to force, reducing the risk of shaking and falling off of the cast busbar body during operation, improving the stability and safety of the cast busbar body, and reducing the wear of the cast busbar and the triangular brackets, extending their service life.
[0025] By setting the hollow plate, extension plate, cross plate and connecting rod, each triangular bracket can be connected to each other after installation, forming a more stable structural system. Not only the connection points and constraints between the triangular brackets are increased, making the whole structure more stable when subjected to stress and less prone to deformation or collapse, but also the triangular bracket itself has a strong bearing capacity. By connecting multiple triangular brackets to each other, the overall bearing capacity can be further enhanced, so that each triangular bracket can share the load together, avoiding the risk of damage to a single bracket due to excessive force, thereby further improving the stability of the cast busbar body after installation. BRIEF DESCRIPTION OF THE DRAWINGS
[0026] In order to facilitate understanding by those skilled in the art, the present invention is further described below with reference to the accompanying drawings.
[0027] Figure 1 It is a schematic diagram of the overall structure of the present invention;
[0028] Figure 2 For the present invention Figure 1 A schematic diagram of the enlarged structure of the middle A area;
[0029] Figure 3 This is a schematic diagram of the triangular bracket connection structure of the present invention;
[0030] Figure 4 For the present invention Figure 3 Schematic diagram of the enlarged structure of the middle B area;
[0031] Figure 5 This is a schematic diagram of the connection structure of the triangular bracket and the limiting plate of the present invention;
[0032] Figure 6 It is a schematic diagram of the connection structure of the hollow plate and the extension plate of the present invention;
[0033] Figure 7 For the present invention Figure 6 Schematic diagram of the enlarged structure of the middle C area;
[0034] Figure 8 This is a schematic diagram of the connection structure between the base plate and the handle of the present invention.
[0035] In the figure: 1. Wall; 2. Casting busbar body; 3. Triangular bracket; 4. Mounting plate; 5. Bolts;
[0036] 601, limit plate; 602, moving plate; 603, frame; 604, linkage plate; 605, central axis; 606, dial plate; 607, through slot; 608, first cylinder; 609, second cylinder; 610, moving block; 611, support frame; 612, lifting column; 613, limit block; 614, disc; 615, convex block; 616, spring; 617, vertical plate; 618, slot; 619, linkage column;
[0037] 701, hollow plate; 702, extension plate; 703, mounting hole; 704, cross plate; 705, connecting rod; 706, side plate; 707, bottom plate; 708, push plate; 709, handle; 710, slide column; 711, connecting block; 712, threaded rod; 713, slide groove; 714, positioning hole;
[0038] 8. Threaded hole. DETAILED DESCRIPTION
[0039] The technical solution of the present invention will be clearly and completely described below in conjunction with the embodiments. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.
[0040] The volcanic rock inorganic mineral full cast busbar support hoisting structure of this embodiment is as follows Figure 1 - Figure 8 As shown, it includes a wall 1 and a cast busbar body 2, the cast busbar body 2 is arranged on one side of the wall 1, and mounting plates 4 are equidistantly fixedly connected on both sides of the cast busbar body 2, and triangular brackets 3 are equidistantly arranged on one side of the cast busbar body 2 close to the mounting plate 4, and threaded holes 8 are symmetrically opened on the upper end faces of the triangular brackets 3, and bolts 5 are symmetrically threaded through the mounting plates 4, and the bolts 5 are threadedly connected to the threaded holes 8, and busbar installation auxiliary support mechanisms are arranged on the triangular brackets 3, and the busbar installation auxiliary support mechanisms are used to assist the cast busbar body 2 to move to a specified position.
[0041] In this embodiment, Figure 2 As shown, the busbar installation auxiliary support mechanism includes a limit plate 601, which is rotatably connected to the side of the triangular bracket 3 away from the wall 1, and the triangular bracket 3 is horizontally slidably connected to a movable plate 602 on the side away from the cast busbar body 2. The movable plate 602 is fixedly connected to a frame 603 on the side close to the limit plate 601, and a linkage column 619 is slidably connected inside the frame 603. The linkage column 619 is fixedly connected to a linkage plate 604, and the linkage plate 604 is fixedly connected to the outer surface of the limit plate 601. When the movable plate 602 moves horizontally on the side wall of the triangular bracket 3, the linkage column 619 can be pushed to move through the frame 603, and the linkage plate 604 is moved to drive the limit plate 601 to rotate on the triangular bracket 3.
[0042] In this embodiment, Figure 2 As shown, the busbar installation auxiliary support mechanism also includes a central axis 605, which is fixedly connected to the side of the triangular bracket 3 close to the movable plate 602. The outer surface of the central axis 605 is rotatably connected with a dial plate 606. The dial plate 606 is symmetrically provided with through grooves 607. The through grooves 607 are respectively slidably connected with a first cylinder 608 and a second cylinder 609. The first cylinder 608 is fixedly connected to the side wall of the movable plate 602. When the second cylinder 609 moves horizontally, the dial plate 606 will be driven to rotate on the outer surface of the central axis 605 through the through groove 607, and the dial plate 606 will drive the first cylinder 608 to move in the opposite direction synchronously, thereby driving the movable plate 602 to move horizontally on the side wall of the triangular bracket 3.
[0043] In this embodiment, Figure 3 and Figure 4As shown, a moving block 610 is fixedly connected to one side of the second cylinder 609 close to the triangular bracket 3. The moving block 610 is horizontally slidably connected to the upper end surface of the triangular bracket 3. A slot 618 is provided on the upper end surface of the moving block 610. When the moving block 610 moves horizontally, the moving block 610 will move horizontally synchronously through the second cylinder 609 connected to the side wall.
[0044] In this embodiment, Figure 4 As shown, the upper end surface of the triangular bracket 3 is fixedly connected to a support frame 611 on the side away from the mounting plate 4, and a lifting column 612 is slidably connected to the support frame 611, and the lower end of the lifting column 612 is fixedly connected to a limit block 613, and the limit block 613 and the card slot 618 are mutually engaged, and the side of the limit block 613 close to the moving block 610 is an inclined surface, and the upper end surface of the lifting column 612 is fixedly connected to a disk 614, and a spring is fixedly connected between the lower end surface of the disk 614 and the upper end surface of the support frame 611. Spring 616, spring 616 is sleeved on the outer surface of the lifting column 612. When the inclined surface of the limit block 613 is squeezed, the limit block 613 will push the lifting column 612 to rise on the support frame 611, and pull the spring 616 sleeved on the outer surface of the lifting column 612 through the disc 614. When the force on the limit block 613 disappears, the rebound force of the spring 616 can pull the disc 614 to move downward automatically, pushing the lifting column 612 and the limit block 613 down to the initial position.
[0045] In this embodiment, Figure 4 As shown, the upper end surface of the support frame 611 is fixedly connected to a vertical plate 617, and a protrusion 615 is slidably connected to the disc 614. When the protrusion 615 is pushed to slide on the disc 614 and moves to the upper end surface of the vertical plate 617, the height of the disc 614 can be limited and fixed to prevent the disc 614 from automatically falling due to external force.
[0046] In the prior art, during the installation of the fully cast busbar, the workers need to concentrate on maintaining its stable state to ensure that the busbar does not deviate during the entire installation process, so as to perfectly achieve the expected installation effect. However, under long-term high-intensity work, the workers may fail to fully perform their duties due to momentary negligence, and may be slightly lax in maintaining the stable state of the busbar, or fail to ensure the absolute accuracy of its position when fixing the busbar. This will not only cause a slight deviation in the installation of the busbar, but also seriously affect the electrical performance and overall stability of the busbar, causing abnormal electrical discharge of the busbar during operation, and even directly causing short circuits or system failures, posing a serious threat to the safe operation of the power system. In addition, if the busbar fails to ensure its absolute accuracy during the fixing process, poor contact will occur between the busbars, increasing contact resistance, causing the busbar to generate excessive heat during operation, and if the fixing method is inappropriate or not correctly executed, the busbar will become loose due to vibration or external force during operation, which will cause power transmission failures. There is a risk of displacement or falling off during the installation process, resulting in interruption of power transmission, which poses a safety hazard to surrounding equipment and personnel. Compared with the prior art, the cast busbar body 2 can be automatically limited to the triangular bracket 3 and stabilized to facilitate installation by the staff. It can not only ensure that the cast busbar body 2 does not shift during the installation process, but also avoid the negligence of the staff due to long-term high-intensity work, such as the inability to maintain the stable state of the cast busbar body 2, or the failure to ensure the absolute accuracy of its position when fixing the cast busbar body 2, thereby perfectly achieving the expected installation effect, ensuring that the connection between the cast busbar bodies 2 is tight and the contact is good, reducing the contact resistance, and the precise installation of the cast busbar body 2 can ensure the reliability of the electrical connection, reduce the risk of electrical discharge, short circuit or system failure caused by installation deviation, avoid power outages or equipment damage caused by problems with the cast busbar body 2, thereby maintaining the safe operation of the power system, reducing the heat generated by the cast busbar body 2 during operation, and improving the efficiency of power transmission.
[0047] In other aspects, this embodiment also provides a bracket spacing adjustment mechanism for adjusting the distance between the triangular brackets 3, such as Figure 1 , Figure 6 - Figure 8 As shown, the bracket spacing adjustment mechanism includes a symmetrically arranged hollow plate 701, and the upper and lower ends of the hollow plate 701 are penetrated by an extension plate 702 for sliding connection, and the triangular bracket 3 is respectively fixedly connected to the extension plate 702 and the side wall of the hollow plate 701, and the opposite sides of the two hollow plates 701 are symmetrically fixedly connected with a side plate 706, and the side plate 706 and the extension plate 702 are provided with mounting holes 703, and the side plate 706 and the extension plate 702 are both installed on the side wall of the wall 1 through the mounting holes 703.
[0048] In this embodiment, Figure 6 and Figure 7 As shown, a transverse plate 704 is fixedly connected between the extension plates 702 at the same height, and a connecting rod 705 is symmetrically rotatably connected on one side of the two transverse plates 704. A connecting block 711 is rotatably connected between the connecting rods 705 on the same side, and a sliding column 710 is fixedly connected to the side of the connecting block 711 close to the hollow plate 701. The sliding column 710 is slidably connected to the hollow plate 701. When the sliding column 710 is pushed to slide on the hollow plate 701, the sliding column 710 can drive the connecting block 711 to move horizontally away from or close to the hollow plate 701 synchronously, so that the state of the connecting rod 705 rotatably connected to the upper and lower ends of the connecting block 711 changes. In the process of changing the state of the connecting rod 705, the connecting rod 705 can drive the extension plate 702 at the same height to slide out of or into the hollow plate 701 synchronously through the transverse plate 704.
[0049] In this embodiment, Figure 8 As shown, one end of the sliding column 710 away from the connecting block 711 is fixedly connected with a push plate 708, and the push plate 708 is located between the two side plates 706. The side plates 706 close to the push plate 708 are provided with a sliding groove 713, and the push plate 708 is slidably connected in the sliding groove 713. When the push plate 708 is pushed to slide in the sliding groove 713, it can drive the sliding column 710 to move horizontally synchronously.
[0050] In this embodiment, Figure 8 As shown, a base plate 707 is fixedly connected between the side plates 706 on the same side, and a positioning hole 714 is equidistantly provided at the center of the base plate 707 near the push plate 708. A threaded rod 712 is threadedly connected through the center of the push plate 708, and the threaded rod 712 is threadedly connected to the positioning hole 714. A handle 709 is fixedly connected to the end of the threaded rod 712 away from the positioning hole 714. When the handle 709 is turned to drive the threaded rod 712 to rotate, the threaded rod 712 and the push plate 708 are threadedly connected, so that the threaded rod 712 can slide through the push plate 708, and the push plate 708 can be fixed at the specified position of the base plate 707 due to the limit of the threaded connection between the threaded rod 712 and the positioning hole 714.
[0051] In the prior art, before the staff installs the busbar, the staff is required to install the bracket on the wall 1. In order to improve the installation stability of the busbar, the staff needs to strictly control the spacing between each bracket. However, due to the negligence of the staff or the influence of the measuring tool, the spacing between the brackets after installation will deviate, which will not only cause uneven support of the busbar when it is subjected to force, but also increase the safety hazard of shaking or falling off of the busbar during operation, affect the normal operation of the busbar, accelerate the wear of the busbar and the bracket, and the deviation of the bracket spacing will make it difficult to accurately align and fix the busbar during installation, increase the difficulty and time cost of installation, and even cause the busbar to fail to install. Compared with the prior art, the extension plates on both sides can be driven simultaneously 702 slides out from the inside of the hollow plate 701, driving the triangular brackets 3 on both sides to move automatically, thereby accurately adjusting the spacing between the triangular brackets 3, which not only reduces the human error in the installation process of the triangular brackets 3, shortens the installation time of the triangular brackets 3, and reduces the waste of man-hours caused by repeated measurement and adjustment. At the same time, precise spacing control also reduces the rework rate caused by improper installation, and by accurately adjusting the spacing between the triangular brackets 3, it can ensure that the cast busbar body 2 is evenly supported when subjected to force, reducing the risk of shaking and falling off of the cast busbar body 2 during operation, improving the stability and safety of the cast busbar body 2, and reducing the wear of the cast busbar and the triangular brackets 3, extending their service life.
[0052] The working process and principle involved in the overall content of the above embodiment are as follows:
[0053] When the locking cam 712 is in the unlocked position, the locking cam 712 is in the unlocked position, and the locking cam 712 is in the unlocked position. When the state of rod 705 changes, connecting rod 705 will drive extension plate 702 to slide out from the inside of hollow plate 701 synchronously by rotating the connecting cross plate 704 at one end away from connecting block 711, so that the triangular bracket 3 connected to the side wall of extension plate 702 is away from the triangular bracket 3 connected to the hollow plate 701, and the distance between the triangular brackets 3 is adjusted, which not only reduces the human error in the installation process of the triangular bracket 3, shortens the installation time of the triangular bracket 3, and reduces the waste of man-hours caused by repeated measurement and adjustment, but also reduces the rework rate caused by improper installation by precise spacing control, and ensures that the cast busbar body 2 is evenly supported when subjected to force by precisely adjusting the spacing between the triangular brackets 3, reduces the risk of shaking and falling off of the cast busbar body 2 during operation, improves the stability and safety of the cast busbar body 2, reduces the wear of the cast busbar and the triangular bracket 3, and prolongs their service life;
[0054] When the spacing between the triangular brackets 3 is adjusted, the staff can install the hollow plate 701, the extension plate 702 and the side plate 706 on the wall 1 through the installation holes 703 opened on the extension plate 702 and the side plate 706. After the installation and fixation are completed, the staff can take the cast busbar body 2, push the cast busbar body 2 horizontally, and place the mounting plates 4 connected on both sides of the cast busbar body 2 on the upper end of the triangular bracket 3. In the process of the cast busbar body 2 approaching the triangular bracket 3, since the limit plate 601 on the triangular bracket 3 at the same height is in an outward eight shape, Therefore, the limiting plates 601 on both sides can provide the staff with a spacious entrance and intuitive visual guidance, which not only enables the staff to more easily move the cast busbar body 2 between the triangular brackets 3, reduces the obstacles in the operation process of the cast busbar body 2, and improves the work efficiency of the installation of the cast busbar body 2, but also prevents the cast busbar body 2 from colliding or rubbing with the triangular brackets 3 during the movement process, resulting in damage to the cast busbar body 2, thereby extending the service life of the cast busbar body 2 and reducing the replacement cost caused by damage;
[0055] After the casting busbar body 2 drives the mounting plates 4 on both sides to move to the upper end surface of the triangular bracket 3, the mounting plates 4 will contact the moving block 610 connected to the upper end surface of the triangular bracket 3, and with the continuous movement of the mounting plates 4, the moving block 610 will be pushed to slide horizontally on the upper end surface of the triangular bracket 3. During the movement of the moving block 610, the second cylinder 609 connected to the side wall will be used to drive one end of the dial plate 606 to rotate, driving the dial plate 606 to rotate on the outer surface of the central axis 605, and making the second cylinder 609 slide in the through groove 607. When the dial plate 606 rotates with the central axis 605 as the center, the dial plate 606 will move away from the second cylinder 609. The through groove 607 opened on one side of the cylinder 609 drives the first cylinder 608 to slide synchronously, driving the movable plate 602 connected to one end of the first cylinder 608 to slide out on the side wall of the triangular bracket 3. At this time, the movable plate 602 will push the frame 603 to drive the linkage column 619 inside the frame 603 to move. Since the linkage column 619 is connected with the linkage plate 604, the linkage plate 604 is installed on the limit plate 601, and the limit plate 601 is rotatably connected to the triangular bracket 3, therefore, when the frame 603 pushes the linkage column 619 to move, the linkage column 619 will drive the limit plate 601 to rotate on the triangular bracket 3 through the linkage plate 604. The positioning plates 601 of the same height rotate close to each other and fit on the casting busbar body 2, thereby limiting the position of the casting busbar body 2. At the same time, the mounting plate 4 connected to the side wall of the casting busbar body 2 is limited by the moving block 610 and cannot move further, thereby allowing the mounting plate 4 to move to the specified position on the upper end face of the triangular bracket 3, so that the staff can rotate the bolt 5 through the mounting plate 4 to the threaded hole 8 provided on the upper end face of the triangular bracket 3 to install the casting busbar body 2. This can not only ensure that the casting busbar body 2 does not deviate during the installation process, but also avoid the staff from being injured due to long-term high-intensity work. Negligence, such as failure to maintain the stable state of the cast busbar body 2, or failure to ensure the absolute accuracy of its position when fixing the cast busbar body 2, so as to perfectly achieve the expected installation effect, ensure that the cast busbar body 2 is tightly connected and in good contact, reduce contact resistance, and accurate installation of the cast busbar body 2 can ensure the reliability of electrical connection, reduce the risk of electrical discharge, short circuit or system failure caused by installation deviation, avoid power outages or equipment damage caused by problems with the cast busbar body 2, thereby maintaining the safe operation of the power system, reducing the heat generated by the cast busbar body 2 during operation, and improving the efficiency of power transmission;
[0056] When the installation plate 4 pushes the moving block 610 through the second cylinder 609, the dial plate 606, the central axis 605, the through groove 607, the first cylinder 608, the moving plate 602, the frame 603, the linkage column 619 and the linkage plate 604, and drives the limiting plate 601 to limit the casting busbar body 2, the moving block 610 will synchronously move in the direction of the limiting block 613. Since the limiting block 613 is close to the moving block 610 on the side with an inclined surface, and the upper end surface of the moving block 610 is provided with a slot 618, after the moving block 610 contacts the limiting block 613, it will move along the inclined surface of the limiting block 613, push the moving block 610 to drive the lifting column 612 to rise, and pull the spring 616 through the disc 614 connected to the upper end of the lifting column 612. When the moving block 610 moves to the bottom of the limiting block 613, the rebound force of the spring 616 will pull The movable disc 614 pushes the lifting column 612 to vertically descend on the support frame 611, so that the limit block 613 connected to the lower end of the lifting column 612 is inserted into the slot 618 provided on the upper end surface of the moving block 610, and the position of the moving block 610 is limited, so that when the limit plate 601 is attached to the casting busbar body 2, the position of the limit plate 601 can be automatically fixed, which not only reduces the risk of loosening or displacement of the casting busbar body 2 due to vibration or external force during installation, thereby enhancing the stability and safety of the installation of the casting busbar body 2, but also automatically fixes the position of the limit plate 601, reducing the need for manual intervention, so that the staff can focus more on the key steps in the installation process of the casting busbar body 2, without spending a lot of time on adjusting the position of the limit plate 601, thereby improving the overall efficiency of the installation of the casting busbar body 2;
[0057] After the mounting plates 4 on both sides of the cast busbar body 2 are mounted on the triangular brackets 3, the triangular brackets 3 are connected to each other after installation through the hollow plates 701, extension plates 702, cross plates 704 and connecting rods 705, forming a more stable structural system. This not only increases the connection points and constraints between the triangular brackets 3, making the entire structure more stable when subjected to stress and less prone to deformation or collapse, but also the triangular brackets 3 themselves have a strong bearing capacity. By connecting a plurality of triangular brackets 3 to each other, the overall bearing capacity can be further enhanced, so that the load can be shared between the triangular brackets 3, avoiding the risk of a single bracket being damaged due to excessive stress, thereby further improving the stability of the cast busbar body 2 after installation.
[0058] When it is necessary to disassemble and repair the cast busbar body 2 to release the fixation of the limit plate 601, the staff can lift the protrusion 615 upwards to drive the disc 614 to rise, and pull the limit block 613 out of the slot 618 opened on the upper end surface of the moving block 610 through the lifting column 612 connected to the lower end of the disc 614, and pull the spring 616 connected between the disc 614 and the support frame 611. After the limit block 613 and the slot 618 are completely separated, the staff can push the protrusion 615 to slide inside the disc 614 and slide out from the other side of the disc 614, so that the protrusion 615 moves to the upper end surface of the vertical plate 617, and is hindered by the vertical plate 617, so that the disc 614 automatically descends without being affected by the rebound force of the spring 616. At this time, the staff can contact the fixation of the limit plate 601.
[0059] The preferred embodiments of the present invention disclosed above are only used to help illustrate the present invention. The preferred embodiments do not describe all the details in detail, nor do they limit the invention to the specific implementation methods described. Obviously, many modifications and changes can be made according to the content of this specification. This specification selects and specifically describes these embodiments in order to better explain the principles and practical applications of the present invention, so that those skilled in the art can understand and use the present invention well. The present invention is limited only by the claims and their full scope and equivalents.
Claims
1. A volcanic rock inorganic mineral fully cast busbar support hoisting structure, comprising a wall (1) and a cast busbar body (2), wherein the cast busbar body (2) is arranged on one side of the wall (1), mounting plates (4) are fixedly connected to both sides of the cast busbar body (2) at equal distances, and triangular brackets (3) are arranged at equal distances on one side of the cast busbar body (2) close to the mounting plate (4), threaded holes (8) are symmetrically opened on the upper end faces of the triangular brackets (3), and bolts (5) are symmetrically penetrated and threadedly connected on the mounting plate (4), and the bolts (5) are threadedly connected to the threaded holes (8), characterized in that: The triangular brackets (3) are each provided with a busbar installation auxiliary support mechanism, the busbar installation auxiliary support mechanism being used to assist the cast busbar body (2) in moving to a specified position, the busbar installation auxiliary support mechanism comprising a limit plate (601), the limit plate (601) being rotatably connected to a side of the triangular bracket (3) away from the wall (1), a moving plate (602) being horizontally slidably connected to a side of the triangular bracket (3) away from the cast busbar body (2), a frame (603) being fixedly connected to a side of the moving plate (602) close to the limit plate (601), the frame (603) A linkage column (619) is slidably connected inside, a linkage plate (604) is fixedly connected to the linkage column (619), and the linkage plate (604) is fixedly connected to the outer surface of the limit plate (601). The busbar installation auxiliary support mechanism also includes a central axis (605), and the central axis (605) is fixedly connected to the side of the triangular bracket (3) close to the movable plate (602). The outer surface of the central axis (605) is rotatably connected to a dial plate (606), and both ends of the dial plate (606) are provided with through grooves (607), and the central axis (605) is located between the two through grooves. The through groove (607) is provided with a first cylinder (608) and a second cylinder (609) which are respectively slidably connected in the through groove (607), the first cylinder (608) is fixedly connected to the side wall of the movable plate (602), the second cylinder (609) is fixedly connected to a movable block (610) on a side close to the triangular bracket (3), the movable block (610) is horizontally slidably connected to the upper end surface of the triangular bracket (3), the upper end surface of the movable block (610) is provided with a slot (618), the upper end surface of the triangular bracket (3) is fixedly connected to a support frame (610) on a side away from the mounting plate (4) 11), a lifting column (612) is slidably connected to the support frame (611), the lower end of the lifting column (612) is fixedly connected to a limit block (613), the limit block (613) and the clamping groove (618) are mutually clamped, the limit block (613) is an inclined surface on the side close to the moving block (610), the upper end surface of the lifting column (612) is fixedly connected to a disc (614), a spring (616) is fixedly connected between the lower end surface of the disc (614) and the upper end surface of the support frame (611), and the spring (616) is sleeved on the outer surface of the lifting column (612); A bracket spacing adjustment mechanism is provided between the triangular brackets (3), and the bracket spacing adjustment mechanism is used to adjust the distance between the triangular brackets (3).
2. The volcanic rock inorganic mineral fully cast busbar support hoisting structure according to claim 1 is characterized in that: The upper end surface of the support frame (611) is fixedly connected to a vertical plate (617), and the disc (614) is slidably connected to a protrusion (615).
3. The volcanic rock inorganic mineral fully cast busbar support hoisting structure according to claim 1 is characterized in that: The bracket spacing adjustment mechanism comprises a symmetrically arranged hollow plate (701), wherein the upper and lower ends of the hollow plate (701) are penetrated by an extension plate (702) which is slidably connected, and the triangular bracket (3) is fixedly connected to the extension plate (702) and the side wall of the hollow plate (701) respectively, and the opposite sides of the two hollow plates (701) are symmetrically fixedly connected to a side plate (706), and the side plate (706) and the extension plate (702) are both provided with a mounting hole (703), and the side plate (706) and the extension plate (702) are both mounted on the side wall of the wall (1) through the mounting hole (703).
4. The volcanic rock inorganic mineral fully cast busbar support hoisting structure according to claim 3 is characterized in that: A transverse plate (704) is disposed on the upper and lower sides of the hollow plate (701). The transverse plates (704) are fixedly connected between the extension plates (702) at the same height. Two connecting rods (705) are symmetrically connected to opposite sides of the two transverse plates (704). The positions of the two connecting rods (705) on the upper transverse plate (704) and the two connecting rods (705) on the lower transverse plate (704) correspond to each other. One end of the connecting rod (705) on the side close to the transverse plate (704) is A first connection block (711) is rotatably connected to a side wall of the transverse plate (704); between the connecting rods (705) on one side of the length direction of the two transverse plates (704); and between the connecting rods (705) on the other side of the length direction of the two transverse plates (704). A second connection block (711) is rotatably connected. A sliding column (710) is fixedly connected to one side of the connection block (711) close to the hollow plate (701); and the sliding column (710) penetrates and is slidably connected to the hollow plate (701).
5. The volcanic rock inorganic mineral fully cast busbar support hoisting structure according to claim 4 is characterized in that: The sliding column (710) is fixedly connected to one end thereof away from the connecting block (711) with a push plate (708). The push plate (708) is located between the two side plates (706). A sliding groove (713) is provided on one side of the side plate (706) close to the push plate (708). The push plate (708) is slidably connected in the sliding groove (713).
6. The volcanic rock inorganic mineral fully cast busbar support hoisting structure according to claim 5 is characterized in that: A bottom plate (707) is fixedly connected between the side plates (706) fixedly connected to the same hollow plate (701); positioning holes (714) are equidistantly provided at the center of one side of the bottom plate (707) close to the push plate (708); a threaded rod (712) is threadedly connected through the center of the push plate (708); the threaded rod (712) and the positioning hole (714) are threadedly connected; and a handle (709) is fixedly connected to one end of the threaded rod (712) away from the positioning hole (714).
Citation Information
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Volcanic rock inorganic mineral pours into a mould generating line A-frame hoisting structure entirely
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Adjustable busbar support
EP4297211A1